Cheung M Rex, Krishnan Karthik
Department of Radiation Oncology, University of Texas M.D. Anderson Cancer Center, 1515 Holcombe Boulevard, Box 97, Houston, TX 77030-4009, USA.
Acad Radiol. 2009 Mar;16(3):351-7. doi: 10.1016/j.acra.2008.09.011.
Magnetic resonance imaging with an endorectal coil allows high-resolution imaging of prostate cancer and the surrounding normal organs. These anatomic details can be used to direct radiotherapy. However, organ deformation introduced by the endorectal coil makes it difficult to register magnetic resonance images for treatment planning. In this study, plug-ins for the volume visualization software VolView were implemented on the basis of algorithms from the National Library of Medicine's Insight Segmentation and Registration Toolkit (ITK).
Magnetic resonance images of a phantom simulating human pelvic structures were obtained with and without the endorectal coil balloon inflated. The prostate not deformed by the endorectal balloon was registered to the deformed prostate using an ITK thin plate spline (TPS). This plug-in allows the use of crop planes to limit the deformable registration in the region of interest around the prostate. These crop planes restricted the support of the TPS to the area around the prostate, where most of the deformation occurred. The region outside the crop planes was anchored by grid points.
The TPS was more accurate in registering the local deformation of the prostate compared with a TPS variant, the elastic body spline. The TPS was also applied to register an in vivo T(2)-weighted endorectal magnetic resonance image. The intraprostatic tumor was accurately registered. This could potentially guide the boosting of intraprostatic targets. The source and target landmarks were placed graphically. This TPS plug-in allows the registration to be undone. The landmarks could be added, removed, and adjusted in real time and in three dimensions between repeated registrations.
This interactive TPS plug-in allows a user to obtain a high level of accuracy satisfactory to a specific application efficiently. Because it is open-source software, the imaging community will be able to validate and improve the algorithm.
使用直肠内线圈的磁共振成像可实现前列腺癌及周围正常器官的高分辨率成像。这些解剖细节可用于指导放射治疗。然而,直肠内线圈引入的器官变形使得在治疗计划中对磁共振图像进行配准变得困难。在本研究中,基于美国国立医学图书馆的Insight分割与配准工具包(ITK)中的算法,为体积可视化软件VolView实现了插件。
在直肠内线圈球囊充气和未充气的情况下,获取模拟人体盆腔结构的体模的磁共振图像。使用ITK薄板样条(TPS)将未受直肠内球囊变形影响的前列腺与变形后的前列腺进行配准。该插件允许使用裁剪平面来限制前列腺周围感兴趣区域内的可变形配准。这些裁剪平面将TPS的支持范围限制在前列腺周围大部分变形发生的区域。裁剪平面之外的区域由网格点固定。
与TPS变体弹性体样条相比,TPS在配准前列腺局部变形方面更准确。TPS还被应用于配准一幅体内T2加权直肠内磁共振图像。前列腺内肿瘤被准确配准。这有可能指导前列腺内靶点的增敏放疗。源和目标地标通过图形方式放置。这个TPS插件允许撤销配准。在重复配准之间,可以实时在三维空间中添加、移除和调整地标。
这种交互式TPS插件使用户能够高效地获得满足特定应用要求的高精度结果。由于它是开源软件,成像领域将能够验证和改进该算法。